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关于水溶液中有机化合物电吸附的批判性回顾 - 影响因素和工程考虑。

A critical review on the electrosorption of organic compounds in aqueous effluent - Influencing factors and engineering considerations.

机构信息

Université de Lorraine, CNRS, LRGP, F-54000, Nancy, France; National Center for Research and Studies on Water and Energy (CNEREE), Cadi Ayyad University, B. 511, 40000, Marrakech, Morocco; Laboratory of Water, Biodiversity, and Climate Change, Faculty of Sciences Semlalia, Cadi Ayyad University, B.P. 2390, 40000, Marrakech, Morocco.

Université de Lorraine, CNRS, LRGP, F-54000, Nancy, France.

出版信息

Environ Res. 2022 Mar;204(Pt B):112128. doi: 10.1016/j.envres.2021.112128. Epub 2021 Sep 30.

Abstract

Despite being an old process from the end of the 19 century, electrosorption has attracted renewed attention in recent years because of its unique properties and advantages compared to other separation technologies and due to the concomitant development of new porous electrode materials. Electrosorption offer the advantage to separate the pollutants from wastewater with the possibility of selectively adsorbing and desorbing the targeted compounds. A comprehensive review of electrosorption is provided with particular attention given to the electrosorption of organic compounds, unlike existing capacitive deionization review papers that only focus on inorganic salts. The background and principle of electrosorption are first presented, while the influence of the main parameters (e.g., electrode materials, electrode potential, physico-chemistry of the electrolyte solutions, type of compounds, co-sorption effect, reactor design, etc.) is then detailed and the modeling and engineering aspects are discussed. Finally, the main output and future prospects about recovery studies and combination between electro-sorption/desorption and degradation processes are given. This review particularly highlights that carbon-based materials have been mostly employed (85% of studies) as porous electrode in organics electrosorption, while existing studies lack of electrode stability and durability tests in real conditions. These electrodes have been implemented in a fixed-bed reactor design most of the time (43% of studies) due to enhanced mass transport. Moreover, the electrode potential is a major criterion: it should be applied in the non-faradaic domain otherwise unwanted reactions can easily occur, especially the corrosion of carbon from 0.21 V/standard hydrogen electrode or the water oxidation/reduction. Furthermore, there is lack of studies performed with actual effluents and without addition of supporting electrolyte, which is crucial for testing the real efficiency of the process. The associated predictive model will be required by considering the matrix effect along with transport phenomena and physico-chemical characteristics of targeted organic compounds.

摘要

尽管电吸附是一种源自 19 世纪末期的古老工艺,但近年来由于其与其他分离技术相比具有独特的性能和优势,以及新型多孔电极材料的发展,它重新引起了人们的关注。电吸附具有从废水中分离污染物的优势,并具有选择性吸附和解吸目标化合物的可能性。本文提供了对电吸附的全面综述,特别关注有机化合物的电吸附,与现有的仅关注无机盐的电容去离子综述论文不同。本文首先介绍了电吸附的背景和原理,然后详细讨论了主要参数(例如电极材料、电极电势、电解质溶液的物理化学性质、化合物类型、共吸附效应、反应器设计等)的影响,并讨论了建模和工程方面的问题。最后,给出了关于回收研究以及电吸附/解吸与降解过程结合的主要成果和未来展望。本文特别强调,碳基材料已被广泛用作有机电吸附的多孔电极(85%的研究),而现有研究缺乏在实际条件下的电极稳定性和耐久性测试。这些电极大多采用固定床反应器设计(43%的研究),因为这样可以增强质量传递。此外,电极电势是一个主要标准:它应该应用于非法拉第区,否则容易发生不必要的反应,特别是从 0.21 V/标准氢电极开始的碳腐蚀或水的氧化/还原。此外,缺乏在没有添加支持电解质的实际废水和实际条件下进行的研究,这对于测试该过程的实际效率至关重要。需要考虑到目标有机化合物的基质效应、传输现象和物理化学特性来建立相关的预测模型。

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